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Characterization and Optimization of Gold Nanoparticle-Based Silver-Enhanced Immunoassays

机译:金纳米粒子为基础的银增强免疫分析的表征和优化

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Silver-enhanced nanoparticle-labeled immunoassays providea simple, low-cost, and effective way of detecting antigens in dilute solutions. The physical mechanisms behind their operation, however, have not been fully investigated. We present a semiquantitative approach for optimizing sandwich nanoparticle immunoassays using an adsorption-controlled kinetic model. Primary antibodies were immobilized on a solid substrate to bind the target antigens in solution. An optical signal was measured by secondary labeling of antigens with gold nanoparticles and their enhancement by silver nucleation. The opacity of the silver-enhanced spots was quantified by densitometry. The selectivity of the sandwich immunoassays was adequately high, and antigen concentrations as low as 0.1 (mu)g cm~(-3) (4 ng total) were detected reproducibly. The role of mass transfer was investigated, and a model was developed to optimize the performance of immunoassays by correlating the opacities of silver spots to the concentration and incubation times of antigens and gold nanoparticles. The results could allow the development of more rapid and reliable nanoparticle immunoassays.
机译:银增强的纳米颗粒标记的免疫测定法提供了一种简单,低成本且有效的方法来检测稀溶液中的抗原。但是,尚未对其运行背后的物理机制进行全面研究。我们提出了一种使用吸附控制动力学模型优化夹心纳米颗粒免疫测定的半定量方法。一抗固定在固体基质上,以结合溶液中的靶抗原。通过用金纳米颗粒对抗原进行二次标记并通过银成核增强抗原来测量光信号。通过光密度测定法定量了银增强斑点的不透明度。夹心免疫测定法的选择性足够高,并且可再现地检测到低至0.1μgcm〜(-3)(总共4 ng)的抗原浓度。研究了传质的作用,并开发了一个模型,通过将银点的不透明度与抗原和金纳米颗粒的浓度和孵育时间相关联来优化免疫测定的性能。该结果可以允许开发更快速和可靠的纳米颗粒免疫测定。

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